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Applied Scientist, Amazon Leo Satellite Build Systems

Amazon


Job Location:

Bellevue, WA - USA

Monthly Salary: Not provided by the employer
Posted: 22 August 2026 (Yesterday)
Application Deadline: 19 November 2026
Vacancies: 1 Vacancy

Job Summary

Build the scientific intelligence layer powering Amazons satellite manufacturing system. As an Applied Scientist you will develop machine learning models that transform fragmented manufacturing test quality and operational data into actionable intelligence that improves how satellites are built.

You will tackle ambiguous high-impact problems where data is incomplete noisy and distributed and where model outputs influence real-world manufacturing decisions. Your work will power AI-enabled workflows such as non-conformance disposition root-cause analysis and predictive test optimization - reducing defects accelerating production and helping create more intelligent data-driven manufacturing systems.

Export Control Requirement: Due to applicable export control laws and regulations candidates must be a U.S. citizen or national U.S. permanent resident (i.e. current Green Card holder) or lawfully admitted into the U.S. as a refugee or granted asylum.

Key job responsibilities
- Translate ambiguous manufacturing and operational problems into well-defined scientific problems modeling approaches and evaluation criteria
- Design train and deploy machine learning models including LLM-based systems retrieval models and task-specific models
- Develop and evaluate models using large-scale noisy heterogeneous datasets with incomplete delayed or imperfect ground truth
- Apply state-of-the-art techniques in areas such as anomaly detection root-cause inference multimodal learning information retrieval and generative AI adapting or extending them to meet project requirements
- Design experiments and evaluation frameworks that capture real-world failure modes distribution shift and decision risk
- Make principled tradeoffs among model complexity data quality accuracy latency cost and maintainability
- Build production-quality scientific components with appropriate testing documentation monitoring and operational mechanisms
- Work with Manufacturing Quality Test and engineering partners to understand customer needs and translate them into effective scientific solutions
- Analyze model and system performance identify gaps and root causes and iteratively improve deployed solutions
- Clearly document scientific approaches experimental results design decisions and lessons learned so that others can understand and reproduce the work
- Contribute to technical discussions mentor less experienced teammates and help advance scientific and engineering best practices within the team

A day in the life
You may start by partnering with Quality and Manufacturing teams to define a training dataset for a root-cause prediction model including how historical cases should be labeled and evaluated. You then design experiments and train models comparing approaches across architectures features and data slices. Later you analyze benchmark results to identify failure modes data-quality issues and generalization gaps and refine the evaluation set to better represent real-world cases. You work with engineers to integrate the model into a production workflow adding testing monitoring and feedback mechanisms. Throughout the day you balance scientific rigor with practical constraints such as data availability latency reliability and operational cost.

About the team
Leo Satellite Build Systems is the centralized AI team within Leo Production Operations. We build shared capabilities for AI across Production Operations including governed data assets machine learning models retrieval systems evaluation frameworks and knowledge services.

We work on real-world systems where scientific decisions can influence physical outcomes. We value rigorous experimentation strong data foundations clear documentation and production-ready engineering. Our team is helping enable AI-native manufacturing by turning fragmented operational knowledge and data into reliable intelligence that improves production outcomes.

- 3 years of building models for business application experience
- PhD or Masters degree and 4 years of CS CE ML or related field experience
- Experience in patents or publications at top-tier peer-reviewed conferences or journals
- Experience programming in Java C Python or related language
- Experience in any of the following areas: algorithms and data structures parsing numerical optimization data mining parallel and distributed computing high-performance computing

- Experience using Unix/Linux
- Experience in professional software development
- - Experience with one or more areas such as natural language processing information retrieval multimodal learning anomaly detection causal or root-cause inference or generative AI
- - Experience training or deploying LLM-based systems retrieval-augmented generation (RAG) or other modern AI systems
- - Experience designing evaluation datasets and methodologies for production machine learning systems
- - Experience working with noisy incomplete delayed or weakly labeled data
- - Experience adapting or extending state-of-the-art research techniques to solve practical business problems
- - Experience building reliable testable and maintainable machine learning components for production environments
- - Experience working with engineering manufacturing quality test or operations teams
- - Experience in manufacturing aerospace robotics or other complex physical-world systems
- - Experience with governed access-controlled or compliance-constrained data environments
- - Experience communicating scientific methods results and tradeoffs through clear technical documentation or research publications

Amazon is an equal opportunity employer and does not discriminate on the basis of protected veteran status disability or other legally protected status.

Los Angeles County applicants: Job duties for this position include: work safely and cooperatively with other employees supervisors and staff; adhere to standards of excellence despite stressful conditions; communicate effectively and respectfully with employees supervisors and staff to ensure exceptional customer service; and follow all federal state and local laws and Company policies. Criminal history may have a direct adverse and negative relationship with some of the material job duties of this position. These include the duties and responsibilities listed above as well as the abilities to adhere to company policies exercise sound judgment effectively manage stress and work safely and respectfully with others exhibit trustworthiness and professionalism and safeguard business operations and the Companys reputation. Pursuant to the Los Angeles County Fair Chance Ordinance we will consider for employment qualified applicants with arrest and conviction records.

Our inclusive culture empowers Amazonians to deliver the best results for our customers. If you have a disability and need a workplace accommodation or adjustment during the application and hiring process including support for the interview or onboarding process please visit for more information. If the country/region youre applying in isnt listed please contact your Recruiting Partner.

The base salary range for this position is listed below. Your Amazon package will include sign-on payments and restricted stock units (RSUs). Final compensation will be determined based on factors including experience qualifications and location. Amazon also offers comprehensive benefits including health insurance (medical dental vision prescription Basic Life & AD&D insurance and option for Supplemental life plans EAP Mental Health Support Medical Advice Line Flexible Spending Accounts Adoption and Surrogacy Reimbursement coverage) 401(k) matching paid time off and parental leave. Learn more about our benefits at CA El Segundo - 142800.00 - 193200.00 USD annually
USA WA Bellevue - 142800.00 - 193200.00 USD annually


Required Experience:

IC


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